A vertebral column implant for the elastic stabilization of motion segments (1, 2) comprising an elastically bendable connecting element (5) which can be passed through the seats (4) of a number of pedicle screws (3) having offset seat axes (6a, 6b, 6c) and be anchored. The connecting element is bendable elastically about every axis of its cross-section in such a way that the connecting element can be passed through, or inserted in, the seats of the screwheads, one behind the other, even when the seats are not situated on one and the same axis. The connecting element and the seat in the screwhead each have wholly, or in part, a structured surface, in such a way that the structured surface of the seat engages the structured surface of the connecting element, and shifting can be prevented in assembled condition.

Patent
   7125410
Priority
May 21 2002
Filed
May 21 2003
Issued
Oct 24 2006
Expiry
Mar 15 2024
Extension
299 days
Assg.orig
Entity
Small
235
13
all paid
1. A vertebral column implant comprising a connecting element and a plurality of bone screws, each screw having a seat in its screwhead for the connecting element, wherein the connecting element is bendable elastically about every axis of its cross-section in such a way that the connecting element can be passed through, or inserted in, the seats of the screwheads, one behind the other, even when the seats are not situated on one and the same axis; wherein the connecting element and the seat in the screwhead each have wholly, or in part, a structured surface, in such a way that the structured surface of the seat engages the structured surface of the connecting element, and shifting can be prevented in assembled condition; and wherein the structured surface of the seat and the structured surface of the connecting element each has a structure of annular grooves with channels of the grooves being substantially at right angles to the longitudinal axis of the connecting element.
2. The vertebral column implant according to claim 1, characterized in that the elastic connecting element is a rod made of an elastic material.
3. The vertebral column implant according to claim 2, characterized in that the elastic material consists of a biocompatible plastic which may be composed of one or more kinds of monomer components.
4. The vertebral column implant according to claim 3, characterized in that the biocompatible plastic is a plastic on the basis of polyurethane.
5. The vertebral column implant according to claim 1, characterized in that the elastic connecting element has a structure with one or more hollow spaces.
6. The vertebral column implant according to claim 5, characterized in that the elastic connecting element has a tubular cross-section with a wall thickness variable along the connecting element, which wall thickness confers the desired variable stiffness upon the connecting element according to the position.
7. The vertebral column implant according to claim 6, characterized in that the connecting element and the seat in the screwhead each have wholly or in part a structured surface, in such a way that the structured surface of the seat engages the structured surface of the connecting element and shifting can be prevented in assembled condition.
8. The vertebral column implant according to claim 7, characterized in that the structured surfaces have a structure grooved substantially at right angles to the longitudinal axis of the connecting element.
9. The vertebral column implant according to claim 1, characterized in that the seat of the screwhead has a slot so that the elastic connecting element can be inserted and anchored in the seat with elastic deformation.
10. The vertebral column implant according to claim 1, characterized in that a grooved structure of the seat of the screwhead is continued into a plurality of bevels of the slot so that the elastic connecting element can be pre-positioned for verifying the correct spacing of the vertebrae.
11. The vertebral column implant according to claim 1, characterized in that the connecting element has a round cross-section with a flat side so that the connecting element can be introduced into the seat with a reduced inside width and thereafter anchored by means of a rotation.
12. The vertebral column implant according to claim 1, characterized in that the connecting element has a round cross-section with two parallel flat sides so that the connecting element can be introduced into the seat with a reduced inside width and thereafter anchored by means of a rotation.
13. The vertebral column implant according to claim 1, characterized in that the connecting element has a hollow space about the longitudinal axis, which hollow space facilitates the elastic deformation for introduction into the seat.
14. The vertebral column implant according to claim 13, characterized in that it comprises a plug which can be pushed into the hollow space after introduction of the connecting element into the seat.
15. The vertebral column implant according to claim 1, characterized in that the seat of the screwhead is clampable, and the connecting element can be clamped after introduction.
16. The vertebral column implant according to claim 1, characterized in that the seat of the screwhead has a hook device into which a wedge can be hooked with preload of the connecting element.
17. The vertebral column implant according to claim 1, characterized in that the grooves on the connecting element have a pitch, the seat on the screwhead has the same grooves with pitch and thus acts like a nut, so that the connecting element can be screwed in and passed through the screwheads by rotation about the longitudinal axis.

The present invention relates to a vertebral column implant of the type comprising a connecting element and a number of bone screws, each having a seat for this connecting element. The implant serves to elastically stabilize the vertebral column of a person having severe back pain.

The current prior art still comprises mostly stabilization systems aimed at an osseous fusion (stiffening) of affected vertebrae. Elastic systems which merely support and stabilize segments of the vertebral column, but are not supposed to fuse it, have appeared only sporadically so far. These recent elastic systems still involve considerable implant time and expenditure. For reasons of production costs, operating time, and security in handling, future vertebral column stabilization systems should be as simple as possible.

The advantages of elastic stabilizations are becoming increasingly well known, above all by young patients, so that various inventors have developed and disclosed such systems. However, these inventions involve drawbacks which will be explained with the aid of the following examples.

Although the invention according to patent EP 0498 709 B1 to Graf intends to stabilize elastically, it has the drawback that the system works only in flexion (tension) but not in extension (compression). The stabilization is usually produced by means of at least two individual, mutually offset textile loops.

The invention according to patent application WO 93/20771 of Mazel also intends to connect vertebrae by means of pairs of flexible longitudinal rods. However, this invention has the drawbacks that the longitudinal rods have hardly any resistance to buckling and therefore can hardly transmit compressive forces, that the flexibility of the rods disposed in pairs cannot be the same in all directions, and that the transmission of force to the bone screws must take place by means of numerous components.

The invention according to patent EP 0516 567 B1 to Navas proposes the insertion of shock absorbers between the vertebrae. This invention has the drawbacks, however, that these shock absorbers are not longitudinally adjustable and that the plastic material is passed through a narrow place (neck), which results in a considerable decrease in strength.

The invention according to U.S. Pat. No. 5,282,863 A to Burton also intends to stabilize flexibly. However, this invention has the drawbacks that the system is too wide and can be put in place posteriorly only if the pedicles are removed, that it can be used for only one segment, that it cannot, for example, be passed through three screws lying one behind the other and offset, that the bore in the connecting element results in considerable weakening, and that the oval cross-section of the connecting element has only minimum shear strength and minimum resistance to buckling in the anterior/posterior direction. Furthermore, for fastening the connecting element to the pedicle screw, a locking cap must be used, which is a disadvantage during the operation.

The invention according to patent application EP 0 667 127 A1 of Sanders seeks to achieve a certain elasticity by means of a metallic connection in that the form of the connection part allows local bending. However, this invention has the drawback that the connecting parts are not longitudinally adjustable and cannot be inserted multisegmentally.

The invention according to patent EP 0669 109 B1 to Baumgartner et al. likewise intends to stabilize adjacent vertebral segments elastically by using a cord for tensile forces and a plastic cushion for compressive forces. This invention has the drawbacks, however, that the system contains an expensive cord any desired cushion heights can be achieved only by means of a plurality of standard cushions, variation of the preload on the cord leads to conditions not reproducible biomechanically, and implantation is relatively expensive and takes a long time.

Accordingly, the tasks underlying the present invention are to transmit both tensile and compressive forces between adjacent vertebrae by means of one and the same connecting element and to be passed through bone screws, preferably anchored in the pedicles, or to be insertable in such screws, which by their nature do not lie on one axis.

The solution to this task is distinguished in that an elastic connecting element is used which, owing to the local, maximally allowable cross-sections, achieves sufficient shear strength, tensile strength, compressive strength, and resistance to buckling to transmit the forces to be expected lastingly and reliably.

Consequently, the subject of the invention is a vertebral column implant comprising a connecting element and a number of bone screws, each having a seat for this connecting element, which is characterized in that the connecting element is bendable elastically about every axis of its cross-section in such a way that it can be passed through or inserted in the seats of a number of screwheads one behind the other even when the latter are not situated on one and the same axis.

The connecting element bendable elastically about every axis of its cross-section is made of an elastically bendable biocompatible material, preferably a plastic. Such a plastic is a polymer which may be composed of the same or different components and has the desired mechanical and chemical properties, e.g., a polyurethane-based material such as aromatic polycarbonate-polyurethanes (suitable commercially available products are, for example: BIONATE® of Polymer Technology Group, 2810 7th Street, Berkeley, Calif. 94710, U.S.A., and ChronoFlex®C of CardioTech International Inc., 78E Olympia Ave., Woburn, Mass. 01801-2057, U.S.A.). The connecting element proposed according to the invention has sufficient bending elasticity about all axes of its cross-section, so that the insertion thereof is made possible even in seats of screwheads which are not on one axis but rather lie on a line running arbitrarily, or are, by their nature owing to differing arrangements of vertebrae, offset in different directions.

The connecting element with the stabilizing effect may have a cross-section varied in the direction of the rod axis so that it has a stiffness variable dependent upon position, giving it a locally adapted stabilization effect. The stabilization effect of adjacent vertebrae may thereby be adjusted up to local stiffening with gradual transitions. For this purpose, the connecting element may take the form of a hollow rod with walls of varied thickness. When the following text speaks of “original cross-section” in connection with the connecting element, this means that the cross-section corresponds essentially to the original cross-section existing prior to insertion of the element, which does not exclude the occurrence of deviations, e.g., through compression or through bias by the fastening means disposed on the screwhead.

The seats which are integrated in the heads of the bone screws preferably have a C-shaped form in which the elastic connecting element can be engaged in the correct position by the surgeon. For this purpose the seat may be designed in such a way that it is likewise elastic to a certain extent. Thereby, during the operation, fastening without additional small implant parts is made possible.

For the purpose of fixing the connecting elements to the seats, their surfaces, which come into contact with each other at the time of fixing, may be provided with an interlocking-surface structure so that when a connecting element is engaged in a seat, mutual shifting is no longer possible. This surface structure is, for example, a suitable grooved structure having grooves at right angles to the connecting element. The grooved structure may also be a threaded structure making screwing-in possible. Other interengageable surface structures may also be chosen, such as a nub-and-depression structure, for instance. When a grooved structure at right angles to the longitudinal axis of the connecting element is used, the grooved structure in the seat may be so designed that engagement of the grooved structure of the connecting element in an extended grooved structure in the insertion opening of the seat is possible. In this way, pre-fixing can be achieved so that prior to engagement of the connecting element in the seat, the surgeon may check its anatomically correct position.

The vertebral column implant according to the present invention is capable of stabilizing vertebral columns which have become unstable due to degenerative or iatrogenic processes and thus painful, and of reducing or completely avoiding pain. The advantage of an elastic stabilization is above all that individual vertebrae need no longer be fused as previously, which led in many cases to secondary damage to adjacent segments. The particular advantage of the present invention resides in the low production costs, as well as in the simple and safe implantation technique of the system.

The following list of figures gives an overall view of the accompanying drawings.

Shown diagrammatically are:

FIG. 1, a vertebral column segment having a number of vertebrae with left and right pedicle screws and a left and right elastically bendable connecting rod;

FIG. 1a, a partial view of a vertebral column segment, but with an alternative seat in the head of the pedicle screws;

FIG. 2, by way of example, three pedicle screws having mutually offset axes and the inserted elastically bendable connecting rod;

FIG. 2a, a partial view of FIG. 2 with an alternative pedicle screw;

FIG. 3, a partial view of an elastically bendable connecting rod having a grooved surface;

FIGS. 4 and 4a, views of a pedicle screw having a grooved seat in the head;

FIGS. 5 and 5a, views of a pedicle screw having a grooved seat in the head, where the grooved structure is extended into the slot of the seat and the bevel projecting beyond it;

FIG. 6a, the seat with slot in the screwhead and the rod outside the seat; FIG. 6b, the elastically compressed rod upon insertion into the seat with slot in the screwhead; FIG. 6c, the elastic rod in its original cross-section in the seat with slot;

FIG. 7a, the seat with slot in the screwhead and the rod with a flattened side outside the seat; FIG. 7b, the elastically compressed rod with a flattened side upon insertion into the seat with slot in the screwhead; FIG. 7c, the elastic rod with a flattened side in its original cross-section rotated in the seat with slot;

FIG. 8a, the seat with slot in the screwhead and the rod with two parallel flattened sides outside the seat; FIG. 8b, the elastically compressed rod with two parallel flattened sides upon insertion in the seat with slot in the screwhead;

FIG. 8c, the elastic rod with two parallel flattened sides in its original cross-section rotated in the seat with slot;

FIG. 9a, the seat with slot in the screwhead and the rod with a hollow space in the center outside the seat; FIG. 9b, the elastically compressed rod with a hollow space in the center upon insertion into the seat with slot in the screwhead;

FIG. 9c, the elastic rod with a hollow space in the center in its original cross-section with a filler in the hollow space in the seat with slot;

FIG. 10a, the seat with slot with a clamp device; FIG. 10b, the elastic rod clamped in the seat with slot;

FIG. 11, the seat with slot with a hook device and a hooked-in wedge;

FIG. 12a, an elastically bendable connecting rod having a grooved surface provided with a pitch; FIG. 12b, the grooved seat, provided with the same pitch, in the head of the pedicle screw.

The present invention is described in more detail below with reference to the accompanying drawings, which merely represent examples of embodiments.

FIG. 1 shows a vertebral column segment having three vertebrae 1a, 1b, 1c, and two discs 2a, 2b situated between them. Inserted to the left and right of each vertebra is a pedicle screw 3, each having a seat 4 in each of which an elastically bendable, rod-shaped connecting element 5 is fastened to the left and right. The connecting elements 5 are mounted in the seats 4 and serve for flexible stabilization of the vertebrae.

FIG. 1a is a partial view of an analogous vertebral column segment having a pedicle screw 3 with an open seat 4a for mounting a connecting element 5.

FIG. 2 shows three pedicle screws 3a, 3b, 3c having mutually offset axes (6a, 6b, 6c) of their seats in the head and the inserted elastically bendable, rod-shaped connecting element 5.

FIG. 2a shows a partial view corresponding to FIG. 2, but with an open seat 4a for the connecting element 5.

FIG. 3 shows a partial view of an elastically bendable, rod-shaped connecting element 5 with a grooved surface 7. The grooving corresponding to the connecting rod serves for a form-engagement in a correspondingly designed seat of a pedicle screw.

FIG. 4 shows the side view of a pedicle screw 3a, the head of which is shown as a partial section (plane a—a in FIG. 4a). The head is designed as seat 4 having an inner grooved surface with ribs 8. Provided on both sides in the seat opening are bevels 9 which facilitate the insertion of a stabilization element. FIG. 4a shows the top view of the same pedicle screw. Seen here is the opening of the seat 4 with the two bevels 9 and a rib 8 of the inner grooved surface.

FIG. 5 is the side view of a further embodiment of a pedicle screw 3, the head of which, also shown as a partial section (taken on the line b—b of FIG. 5a), is designed as a modified seat 4. The seat has in the slot thereof a grooved surface with ribs 8a which extend into the bevel 9a. By means of this design of the seat, a correspondingly grooved connecting element can be prepositioned without slipping prior to snapping into the seat so that the surgeon can check the correct position. FIG. 5a shows the top view of same pedicle screw. Seen here is the opening of the seat 4 with the two bevels 9a and a rib 8a of the inner grooved surface. Seen here is the extension of the grooved surface to the bevel 9a.

FIG. 6a shows diagrammatically in section a seat 4 with slot in the screwhead of a pedicle screw and a connecting element 10 which is still situated outside the seat. FIG. 6b shows the elastically compressed connecting element 10 during insertion in the slot of the seat 4 in the screwhead. FIG. 6c shows in section the elastic connecting element 10 again in its original cross-section, introduced into the seat 4 with slot in the screwhead.

FIG. 7a shows in section the screwhead designed as seat 4 with slot and the rod-shaped connecting element 11 with a flattened side still outside the seat 4. FIG. 7b shows the elastically compressed connecting element 11 with a flattened side upon insertion into the seat with slot in the screwhead. FIG. 7c shows the elastic connecting element 11 with a flattened side again in its original cross-section, introduced into the seat 4 with slot in the screwhead, rotated by 90°.

FIG. 8a shows in section the seat 4 with slot in the screwhead and the connecting element 12 with two parallel flattened sides still outside the seat 4. FIG. 8b shows the elastically compressed connecting element with two parallel flattened sides 12 upon insertion in the seat 4 with slot in the screwhead. FIG. 8c shows the elastic connecting element 12 with two parallel flattened sides again in its original cross-section introduced into the seat 4 with slot in the screwhead, rotated by 90°.

FIG. 9a shows in section the seat 4 with slot in the screwhead and a connecting element 13 with a hollow space 14 in the center still outside the seat 4. FIG. 9b shows the elastically compressed connecting element 13 with a hollow space 14 in the center upon insertion into the seat 4 with slot in the screwhead. Here the hollow space 14 in the center of the connecting element 13 facilitates the elastic compression of the connecting element for easier insertion. FIG. 9c shows the elastic connecting element 13 with a hollow space 14 in the center again in its original cross-section, introduced into the seat 4 with slot in the screwhead, but now provided (optionally) with a plug 15 filling the hollow space, and form-lockingly anchored with the aid of the grooved surfaces disposed in the seat 4 and on the connecting element 13.

FIG. 10a shows in section a further embodiment of a seat 16 with slot in the screwhead provided with a clamp device 17. FIG. 10b shows the seat 16 with slot in the screwhead, an inserted connecting element 5 in its clamped cross-section and with clamp device 17 pulled together.

FIG. 11 shows a further embodiment of a seat 18 with slot in the screwhead, provided with a hook device 19 and a wedge 20, hooked in under preload, for holding the connecting element 5.

FIG. 12a shows a partial view of an elastically bendable, rod-shaped connecting element 5a with grooved surface provided with a pitch 21, and FIG. 12b shows the grooved seat in the head of the pedicle screw 3 provided with the same pitch. The grooves with pitch cause the rod to act like a screw and the seat in the screwhead to act like a nut, so that the rod can be screwed into the screwheads by rotation about the longitudinal axis and passed through.

Freudiger, Stefan

Patent Priority Assignee Title
10039577, Nov 23 2004 Bone anchor receiver with horizontal radiused tool attachment structures and parallel planar outer surfaces
10039578, Dec 16 2003 DePuy Synthes Products, Inc. Methods and devices for minimally invasive spinal fixation element placement
10105163, Apr 15 2009 DEPUY SYNTHES PRODUCTS, INC Revision connector for spinal constructs
10136923, Jul 20 2007 DePuy Synthes Products, Inc. Polyaxial bone fixation element
10154859, Sep 29 2008 DePuy Synthes Products, Inc. Polyaxial bottom-loading screw and rod assembly
10194951, May 10 2005 NuVasive, Inc Polyaxial bone anchor with compound articulation and pop-on shank
10258382, Jan 18 2007 Rod-cord dynamic connection assemblies with slidable bone anchor attachment members along the cord
10299839, Dec 16 2003 Medos International Sárl Percutaneous access devices and bone anchor assemblies
10363070, Nov 02 2010 JACKSON, ROGER P Pivotal bone anchor assemblies with pressure inserts and snap on articulating retainers
10383660, May 01 2007 Soft stabilization assemblies with pretensioned cords
10405892, Nov 03 2008 DePuy Synthes Products, Inc. Uni-planer bone fixation assembly
10470801, Jan 18 2007 Dynamic spinal stabilization with rod-cord longitudinal connecting members
10543107, Dec 07 2009 Devices and methods for minimally invasive spinal stabilization and instrumentation
10548740, Oct 25 2016 Devices and methods for vertebral bone realignment
10575961, Sep 23 2011 Spinal fixation devices and methods of use
10595908, Nov 21 2005 DePuy Sythes Products, Inc. Polaxial bone anchors with increased angulation
10610380, Dec 07 2009 Devices and methods for minimally invasive spinal stabilization and instrumentation
10695105, Aug 28 2012 Spinal fixation devices and methods of use
10709479, Sep 29 2008 DePuy Synthes Products, Inc. Polyaxial bottom-loading screw and rod assembly
10729469, Jan 09 2006 Flexible spinal stabilization assembly with spacer having off-axis core member
10744000, Oct 25 2016 Devices and methods for vertebral bone realignment
10857003, Oct 14 2015 Devices and methods for vertebral stabilization
10857004, Dec 07 2009 Devices and methods for minimally invasive spinal stabilization and instrumentation
10898234, Jul 20 2007 DePuy Synthes Products, Inc. Polyaxial bone fixation element
10918498, Nov 24 2004 Devices and methods for inter-vertebral orthopedic device placement
10945861, Dec 07 2009 Devices and methods for minimally invasive spinal stabilization and instrumentation
10973648, Oct 25 2016 Devices and methods for vertebral bone realignment
11006978, Jun 17 2009 DePuy Synthes Products, Inc. Revision connector for spinal constructs
11006982, Feb 22 2012 Spinous process fixation devices and methods of use
11020152, Apr 15 2009 DEPUY SYNTHES PRODUCTS, INC Revision connector for spinal constructs
11058548, Oct 25 2016 Samy, Abdou Devices and methods for vertebral bone realignment
11096799, Nov 24 2004 Devices and methods for inter-vertebral orthopedic device placement
11129648, Sep 12 2008 DePuy Synthes Products, Inc. Spinal stabilizing and guiding fixation system
11173040, Oct 22 2012 Cogent Spine, LLC Devices and methods for spinal stabilization and instrumentation
11179248, Oct 02 2018 Samy, Abdou Devices and methods for spinal implantation
11246718, Oct 14 2015 Devices and methods for vertebral stabilization
11259935, Oct 25 2016 Devices and methods for vertebral bone realignment
11324608, Sep 23 2011 Spinal fixation devices and methods of use
11357550, Jul 20 2007 DePuy Synthes Products, Inc. Polyaxial bone fixation element
11389214, Nov 23 2004 Spinal fixation tool set and method
11419642, Dec 16 2003 MEDOS INTERNATIONAL SARL Percutaneous access devices and bone anchor assemblies
11426216, Dec 16 2003 DePuy Synthes Products, Inc. Methods and devices for minimally invasive spinal fixation element placement
11432850, Nov 21 2005 DePuy Synthes Products, Inc. Polyaxial bone anchors with increased angulation
11484348, Nov 03 2008 DePuy Synthes Products, Inc. Uni-planer bone fixation assembly
11517449, Sep 23 2011 Spinal fixation devices and methods of use
11559336, Aug 28 2012 Spinal fixation devices and methods of use
11752008, Oct 25 2016 Devices and methods for vertebral bone realignment
11819247, Jul 20 2007 DePuy Synthes Products, Inc. Polyaxial bone fixation element
11839413, Feb 22 2012 Spinous process fixation devices and methods of use
11890037, Sep 12 2008 DePuy Synthes Products, Inc. Spinal stabilizing and guiding fixation system
11918483, Oct 22 2012 Cogent Spine LLC Devices and methods for spinal stabilization and instrumentation
11918486, Dec 07 2009 Devices and methods for minimally invasive spinal stabilization and instrumentation
7578849, Jan 27 2006 Warsaw Orthopedic, Inc Intervertebral implants and methods of use
7635380, Jun 05 2007 FOUNDERS SPINE RESEARCH LLC Bone anchor with a compressor element for receiving a rod for a dynamic stabilization and motion preservation spinal implantation system and method
7641673, Jul 25 2001 ZIMMER SPINE S A S Flexible linking piece for stabilising the spine
7658752, Jun 10 2005 Depuy Spine, Inc Posterior dynamic stabilization x-device
7682376, Jan 27 2006 Warsaw Orthopedic, Inc Interspinous devices and methods of use
7695496, Jun 10 2005 Depuy Spine, Inc Posterior dynamic stabilization Y-device
7763051, Jun 10 2005 Depuy Spine, Inc Posterior dynamic stabilization systems and methods
7763052, Dec 05 2003 N Spine, Inc Method and apparatus for flexible fixation of a spine
7815663, Jan 27 2006 Warsaw Orthopedic, Inc Vertebral rods and methods of use
7815665, Sep 24 2003 Depuy Synthes Products, LLC Adjustable spinal stabilization system
7824430, Dec 08 2006 Warsaw Orthopedic, Inc Methods and devices for treating a multi-level spinal deformity
7828824, Dec 15 2006 Depuy Spine, Inc Facet joint prosthesis
7867256, Oct 07 2004 Synthes USA, LLC Device for dynamic stabilization of bones or bone fragments
7901437, Jan 26 2007 Dynamic stabilization member with molded connection
7935134, Oct 20 2004 Exactech, Inc Systems and methods for stabilization of bone structures
7942900, Jun 05 2007 SPARTEK MEDICAL, INC Shaped horizontal rod for dynamic stabilization and motion preservation spinal implantation system and method
7951169, Jun 10 2005 Depuy Spine, Inc Posterior dynamic stabilization cross connectors
7951170, May 31 2007 Dynamic stabilization connecting member with pre-tensioned solid core
7963978, Jun 05 2007 SPARTEK MEDICAL, INC Method for implanting a deflection rod system and customizing the deflection rod system for a particular patient need for dynamic stabilization and motion preservation spinal implantation system
7967844, Jun 10 2005 Depuy Spine, Inc Multi-level posterior dynamic stabilization systems and methods
7985243, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system with mount for a dynamic stabilization and motion preservation spinal implantation system and method
7988710, Feb 13 2007 N Spine, Inc Spinal stabilization device
7993370, Sep 24 2003 N Spine, Inc Method and apparatus for flexible fixation of a spine
7993372, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system with a shielded deflection rod system and method
7998175, Oct 20 2004 The Board of Trustees of the Leland Stanford Junior University Systems and methods for posterior dynamic stabilization of the spine
8002800, Jun 05 2007 SPARTEK MEDICAL, INC Horizontal rod with a mounting platform for a dynamic stabilization and motion preservation spinal implantation system and method
8002803, Jun 05 2007 SPARTEK MEDICAL, INC ; SPARTEK MEDICAL, INC , A CORP OF DELAWARE Deflection rod system for a spine implant including an inner rod and an outer shell and method
8007518, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing component having a deflectable post and method for dynamic stabilization of the spine
8012175, Jun 05 2007 SPARTEK MEDICAL, INC Multi-directional deflection profile for a dynamic stabilization and motion preservation spinal implantation system and method
8012177, Feb 12 2007 Dynamic stabilization assembly with frusto-conical connection
8012181, Feb 26 2008 SPARTEK MEDICAL, INC Modular in-line deflection rod and bone anchor system and method for dynamic stabilization of the spine
8012182, Jul 25 2000 ZIMMER SPINE S A S Semi-rigid linking piece for stabilizing the spine
8016861, Feb 26 2008 SPARTEK MEDICAL, INC Versatile polyaxial connector assembly and method for dynamic stabilization of the spine
8021396, Feb 26 2008 SPARTEK MEDICAL, INC Configurable dynamic spinal rod and method for dynamic stabilization of the spine
8025680, Oct 20 2004 Exactech, Inc Systems and methods for posterior dynamic stabilization of the spine
8029547, Jan 30 2007 Warsaw Orthopedic, Inc. Dynamic spinal stabilization assembly with sliding collars
8029548, May 05 2008 Warsaw Orthopedic, Inc. Flexible spinal stabilization element and system
8043337, Jun 14 2006 SPARTEK MEDICAL, INC Implant system and method to treat degenerative disorders of the spine
8048113, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system with a non-linear deflection to load characteristic for a dynamic stabilization and motion preservation spinal implantation system and method
8048115, Feb 26 2008 SPARTEK MEDICAL, INC Surgical tool and method for implantation of a dynamic bone anchor
8048121, Jun 05 2007 SPARTEK MEDICAL, INC Spine implant with a defelction rod system anchored to a bone anchor and method
8048122, Jun 05 2007 SPARTEK MEDICAL, INC Spine implant with a dual deflection rod system including a deflection limiting sheild associated with a bone screw and method
8048123, Jun 05 2007 SPARTEK MEDICAL, INC Spine implant with a deflection rod system and connecting linkages and method
8048125, Feb 26 2008 SPARTEK MEDICAL, INC Versatile offset polyaxial connector and method for dynamic stabilization of the spine
8048128, Jun 05 2007 SPARTEK MEDICAL, INC Revision system and method for a dynamic stabilization and motion preservation spinal implantation system and method
8052721, Jun 05 2007 SPARTEK MEDICAL, INC Multi-dimensional horizontal rod for a dynamic stabilization and motion preservation spinal implantation system and method
8052722, Jun 05 2007 SPARTEK MEDICAL, INC Dual deflection rod system for a dynamic stabilization and motion preservation spinal implantation system and method
8057514, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system dimensioned for deflection to a load characteristic for dynamic stabilization and motion preservation spinal implantation system and method
8057515, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing anchor having a deflectable post and centering spring and method for dynamic stabilization of the spine
8057517, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing component having a deflectable post and centering spring and method for dynamic stabilization of the spine
8066739, Feb 27 2004 NuVasive, Inc Tool system for dynamic spinal implants
8066747, Jun 05 2007 SPARTEK MEDICAL, INC Implantation method for a dynamic stabilization and motion preservation spinal implantation system and method
8066750, Oct 06 2006 Warsaw Orthopedic, Inc Port structures for non-rigid bone plates
8070774, Jun 05 2007 SPARTEK MEDICAL, INC Reinforced bone anchor for a dynamic stabilization and motion preservation spinal implantation system and method
8070775, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system for a dynamic stabilization and motion preservation spinal implantation system and method
8070776, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system for use with a vertebral fusion implant for dynamic stabilization and motion preservation spinal implantation system and method
8070780, Jun 05 2007 SPARTEK MEDICAL, INC Bone anchor with a yoke-shaped anchor head for a dynamic stabilization and motion preservation spinal implantation system and method
8075595, Oct 20 2004 The Board of Trustees of the Leland Stanford Junior University Systems and methods for posterior dynamic stabilization of the spine
8080039, Jun 05 2007 SPARTEK MEDICAL, INC Anchor system for a spine implantation system that can move about three axes
8083772, Feb 26 2008 SPARTEK MEDICAL, INC Dynamic spinal rod assembly and method for dynamic stabilization of the spine
8083775, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a natural center of rotation and method for dynamic stabilization of the spine
8092500, May 01 2007 Dynamic stabilization connecting member with floating core, compression spacer and over-mold
8092501, Feb 26 2008 FOUNDERS SPINE RESEARCH LLC Dynamic spinal rod and method for dynamic stabilization of the spine
8096996, Mar 20 2007 Exactech, Inc Rod reducer
8097024, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a deflectable post and method for stabilization of the spine
8100915, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
8105356, Jun 05 2007 SPARTEK MEDICAL, INC Bone anchor with a curved mounting element for a dynamic stabilization and motion preservation spinal implantation system and method
8105359, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system for a dynamic stabilization and motion preservation spinal implantation system and method
8105360, Jul 16 2009 Orthonex LLC Device for dynamic stabilization of the spine
8105368, Sep 30 2005 Dynamic stabilization connecting member with slitted core and outer sleeve
8109970, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system with a deflection contouring shield for a spine implant and method
8109975, Jan 30 2007 Warsaw Orthopedic, Inc. Collar bore configuration for dynamic spinal stabilization assembly
8114130, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system for spine implant with end connectors and method
8114134, Feb 26 2008 SPARTEK MEDICAL, INC Spinal prosthesis having a three bar linkage for motion preservation and dynamic stabilization of the spine
8118840, Feb 27 2009 Warsaw Orthopedic, Inc. Vertebral rod and related method of manufacture
8118842, Jun 05 2007 SPARTEK MEDICAL, INC Multi-level dynamic stabilization and motion preservation spinal implantation system and method
8142480, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system with horizontal deflection rod and articulating vertical rods
8147520, Jun 05 2007 SPARTEK MEDICAL, INC Horizontally loaded dynamic stabilization and motion preservation spinal implantation system and method
8152810, Nov 23 2004 NuVasive, Inc Spinal fixation tool set and method
8162948, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
8162985, Oct 20 2004 The Board of Trustees of the Leland Stanford Junior University Systems and methods for posterior dynamic stabilization of the spine
8162986, Oct 22 2007 Spinelab AG Vertebral column implant
8162987, Jun 05 2007 SPARTEK MEDICAL, INC Modular spine treatment kit for dynamic stabilization and motion preservation of the spine
8172881, Jun 05 2007 SPARTEK MEDICAL, INC , A CORP OF DE Dynamic stabilization and motion preservation spinal implantation system and method with a deflection rod mounted in close proximity to a mounting rod
8172882, Jun 14 2006 SPARTEK MEDICAL, INC Implant system and method to treat degenerative disorders of the spine
8177815, Jun 05 2007 SPARTEK MEDICAL, INC Super-elastic deflection rod for a dynamic stabilization and motion preservation spinal implantation system and method
8182515, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system and method
8182516, Jun 05 2007 SPARTEK MEDICAL, INC Rod capture mechanism for dynamic stabilization and motion preservation spinal implantation system and method
8192469, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system and method with a deflection rod
8211150, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system and method
8211153, Aug 15 2003 Warsaw Orthopedic, Inc. Articulating spinal fixation rod and system
8211155, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a durable compliant member and method for dynamic stabilization of the spine
8216281, Dec 03 2008 FOUNDERS SPINE RESEARCH LLC Low profile spinal prosthesis incorporating a bone anchor having a deflectable post and a compound spinal rod
8226690, Jul 22 2005 The Board of Trustees of the Leland Stanford Junior University Systems and methods for stabilization of bone structures
8252028, Dec 19 2007 Depuy Spine, Inc. Posterior dynamic stabilization device
8257397, Dec 02 2009 FOUNDERS SPINE RESEARCH LLC Low profile spinal prosthesis incorporating a bone anchor having a deflectable post and a compound spinal rod
8267968, Jun 24 2009 KINETIC RESEARCH & DESIGN, INC ; NEUROPRO TECHNOLOGIES, INC Percutaneous system for dynamic spinal stabilization
8267969, Oct 20 2004 Choice Spine, LP Screw systems and methods for use in stabilization of bone structures
8267979, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a deflectable post and axial spring and method for dynamic stabilization of the spine
8273089, Nov 23 2004 NuVasive, Inc Spinal fixation tool set and method
8282672, Aug 29 2005 Bird Biedermann AG Frictional screw-rod connection having an indirect form-locking portion
8287571, Aug 12 2008 ORTHOFIX HOLDINGS, INC ; ORTHOFIX INC Apparatus for stabilizing vertebral bodies
8292892, May 13 2009 NuVasive, Inc Orthopedic implant rod reduction tool set and method
8292926, Sep 30 2005 Dynamic stabilization connecting member with elastic core and outer sleeve
8298267, Jun 05 2007 SPARTEK MEDICAL, INC Spine implant with a deflection rod system including a deflection limiting shield associated with a bone screw and method
8317836, Jun 05 2007 Spartek Medical, Inc. Bone anchor for receiving a rod for stabilization and motion preservation spinal implantation system and method
8323317, Jun 19 2007 ZIMMER BIOMET SPINE, INC Flexible member with variable flexibility for providing dynamic stability to a spine
8333792, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a deflectable post and method for dynamic stabilization of the spine
8337536, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a deflectable post with a compliant ring and method for stabilization of the spine
8348952, Jan 26 2006 DePuy International Ltd System and method for cooling a spinal correction device comprising a shape memory material for corrective spinal surgery
8353932, Sep 30 2005 Polyaxial bone anchor assembly with one-piece closure, pressure insert and plastic elongate member
8366745, May 01 2007 Dynamic stabilization assembly having pre-compressed spacers with differential displacements
8372122, Dec 02 2009 SPARTEK MEDICAL, INC Low profile spinal prosthesis incorporating a bone anchor having a deflectable post and a compound spinal rod
8377067, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
8394127, Dec 02 2009 Spartek Medical, Inc. Low profile spinal prosthesis incorporating a bone anchor having a deflectable post and a compound spinal rod
8394133, Feb 27 2004 Dynamic fixation assemblies with inner core and outer coil-like member
8414614, Oct 22 2005 DePuy International Ltd Implant kit for supporting a spinal column
8414619, Jan 27 2006 Warsaw Orthopedic, Inc. Vertebral rods and methods of use
8419772, Jun 08 2009 REDUCTION TECHNOLOGIES, INC Systems, methods and devices for correcting spinal deformities
8425563, Jan 13 2006 DePuy International Ltd Spinal rod support kit
8430914, Oct 24 2007 Depuy Synthes Products, LLC Assembly for orthopaedic surgery
8430916, Feb 07 2012 SPARTEK MEDICAL, INC Spinal rod connectors, methods of use, and spinal prosthesis incorporating spinal rod connectors
8435268, Jan 19 2007 REDUCTION TECHNOLOGIES INC Systems, devices and methods for the correction of spinal deformities
8444681, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank, friction fit retainer and winged insert
8449576, Jun 28 2006 Depuy Synthes Products, LLC Dynamic fixation system
8475498, Jan 18 2007 Dynamic stabilization connecting member with cord connection
8506599, Feb 12 2007 Dynamic stabilization assembly with frusto-conical connection
8518085, Jun 10 2010 FOUNDERS SPINE RESEARCH LLC Adaptive spinal rod and methods for stabilization of the spine
8523865, Jul 22 2005 Choice Spine, LP Tissue splitter
8545538, Dec 19 2005 Devices and methods for inter-vertebral orthopedic device placement
8551142, Oct 20 2004 Choice Spine, LP Methods for stabilization of bone structures
8556938, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with non-pivotable retainer and pop-on shank, some with friction fit
8568451, Jun 05 2007 FOUNDERS SPINE RESEARCH LLC Bone anchor for receiving a rod for stabilization and motion preservation spinal implantation system and method
8591515, Nov 23 2004 Spinal fixation tool set and method
8591560, Sep 30 2005 Dynamic stabilization connecting member with elastic core and outer sleeve
8613760, Sep 30 2005 Dynamic stabilization connecting member with slitted core and outer sleeve
8623057, Sep 24 2003 DEPUY SYNTHES PRODUCTS, INC Spinal stabilization device
8623058, Jun 19 2007 ZIMMER BIOMET SPINE, INC Flexible member with variable flexibility for providing dynamic stability to a spine
8641734, Feb 13 2009 Depuy Synthes Products, LLC Dual spring posterior dynamic stabilization device with elongation limiting elastomers
8657856, Aug 28 2009 PIONEER SURGICAL TECHNOLOGY, INC Size transition spinal rod
8696711, Sep 30 2005 Polyaxial bone anchor assembly with one-piece closure, pressure insert and plastic elongate member
8721566, Nov 12 2010 Spinal motion measurement device
8814913, Sep 06 2002 Helical guide and advancement flange with break-off extensions
8845649, Sep 24 2004 Spinal fixation tool set and method for rod reduction and fastener insertion
8894657, Feb 27 2004 NuVasive, Inc Tool system for dynamic spinal implants
8911477, Oct 23 2007 Dynamic stabilization member with end plate support and cable core extension
8968366, Sep 24 2003 Depuy Synthes Products, LLC Method and apparatus for flexible fixation of a spine
8979900, Sep 24 2003 DEPUY SYNTHES PRODUCTS, INC Spinal stabilization device
8979904, May 01 2007 JACKSON, ROGER P Connecting member with tensioned cord, low profile rigid sleeve and spacer with torsion control
8992576, Dec 17 2008 DEPUY SYNTHES PRODUCTS, INC Posterior spine dynamic stabilizer
9011494, Sep 24 2009 Warsaw Orthopedic, Inc. Composite vertebral rod system and methods of use
9017384, May 13 2008 STRYKER EUROPEAN HOLDINGS III, LLC Composite spinal rod
9017388, Sep 14 2006 Warsaw Orthopedic, Inc. Methods for correcting spinal deformities
9050139, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
9050140, Aug 12 2008 ORTHOFIX HOLDINGS, INC ; ORTHOFIX INC Apparatus for stabilizing vertebral bodies
9055978, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
9101404, Jan 26 2007 Dynamic stabilization connecting member with molded connection
9144439, Jan 27 2006 Warsaw Orthopedic, Inc. Vertebral rods and methods of use
9149298, Jul 16 2009 SPINESAVE AG Anchorage arrangement for a connecting rod for the stabilization of the spine
9211150, Nov 23 2004 NuVasive, Inc Spinal fixation tool set and method
9216039, Feb 27 2004 NuVasive, Inc Dynamic spinal stabilization assemblies, tool set and method
9216041, Jun 15 2009 JACKSON, ROGER P Spinal connecting members with tensioned cords and rigid sleeves for engaging compression inserts
9232968, Dec 19 2007 DEPUY SYNTHES PRODUCTS, INC Polymeric pedicle rods and methods of manufacturing
9241739, Sep 12 2008 DEPUY SYNTHES PRODUCTS, INC Spinal stabilizing and guiding fixation system
9320543, Jun 25 2009 DEPUY SYNTHES PRODUCTS, INC Posterior dynamic stabilization device having a mobile anchor
9414861, Feb 09 2007 TRANSCENDENTAL SPINE, LLC Dynamic stabilization device
9414863, Feb 22 2005 Polyaxial bone screw with spherical capture, compression insert and alignment and retention structures
9445844, Mar 24 2010 DEPUY SYNTHES PRODUCTS, INC Composite material posterior dynamic stabilization spring rod
9451989, Jan 18 2007 Dynamic stabilization members with elastic and inelastic sections
9480517, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank, shank, friction fit retainer, winged insert and low profile edge lock
9526525, Aug 22 2006 NEUROPRO TECHNOLOGIES, INC Percutaneous system for dynamic spinal stabilization
9629669, Nov 23 2004 NuVasive, Inc Spinal fixation tool set and method
9655651, May 02 2003 Yale University Dynamic spine stabilizer
9681893, Jun 23 2004 Yale University; Rachiotek, LLC Method for stabilizing a spine
9743957, Nov 10 2004 Polyaxial bone screw with shank articulation pressure insert and method
9844397, Apr 22 2015 Warsaw Orthopedic, Inc. Spinal correction system and method
9848918, Nov 21 2005 DePuy Synthes Products, Inc. Polyaxial bone anchors with increased angulation
9907574, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchors with pop-on shank, friction fit fully restrained retainer, insert and tool receiving features
9918745, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank and winged insert with friction fit compressive collet
9918751, Feb 27 2004 NuVasive, Inc Tool system for dynamic spinal implants
9974571, Sep 12 2008 DePuy Synthes Products, Inc. Spinal stabilizing and guiding fixation system
9980753, Jun 15 2009 JACKSON, ROGER P pivotal anchor with snap-in-place insert having rotation blocking extensions
RE47551, Feb 22 2005 NuVasive, Inc Polyaxial bone screw with spherical capture, compression insert and alignment and retention structures
Patent Priority Assignee Title
4719905, Nov 01 1985 DEPUY ACROMED, INC Apparatus and method for maintaining vertebrae in a desired relationship
5282863, Jun 10 1985 ZIMMER SPINE, INC Flexible stabilization system for a vertebral column
5658286, Feb 05 1996 Fabrication of implantable bone fixation elements
5662651, Sep 15 1994 Tornier SAS External or internal fixator for repairing fractures or arthroplasties of the skeleton
6623484, Jul 09 1999 SDGI Holdings, Inc. Methods and apparatus for fusionless treatment of spinal deformities
20030083657,
20050010216,
EP498709,
EP516567,
EP634911,
EP667127,
EP669109,
WO145576,
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